US11076509B2 - Control systems and prediction methods for it cooling performance in containment - Google Patents
Control systems and prediction methods for it cooling performance in containment Download PDFInfo
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- US11076509B2 US11076509B2 US15/879,163 US201815879163A US11076509B2 US 11076509 B2 US11076509 B2 US 11076509B2 US 201815879163 A US201815879163 A US 201815879163A US 11076509 B2 US11076509 B2 US 11076509B2
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- cold air
- information technology
- technology equipment
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/20—Modifications to facilitate cooling, ventilating, or heating
- H05K7/20709—Modifications to facilitate cooling, ventilating, or heating for server racks or cabinets; for data centers, e.g. 19-inch computer racks
- H05K7/20836—Thermal management, e.g. server temperature control
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B13/00—Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion
- G05B13/02—Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion electric
- G05B13/04—Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion electric involving the use of models or simulators
- G05B13/041—Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion electric involving the use of models or simulators in which a variable is automatically adjusted to optimise the performance
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/20—Modifications to facilitate cooling, ventilating, or heating
- H05K7/20709—Modifications to facilitate cooling, ventilating, or heating for server racks or cabinets; for data centers, e.g. 19-inch computer racks
- H05K7/20718—Forced ventilation of a gaseous coolant
- H05K7/20745—Forced ventilation of a gaseous coolant within rooms for removing heat from cabinets, e.g. by air conditioning device
Definitions
- the present invention relates to the field of datacenter infrastructure control systems, and more particularly to systems and methods for using predictive control to enhance performance in containment.
- Containment solutions are becoming a standard practice in data centers today due to their inherent energy efficiency advantages.
- Cold aisle containment, hot aisle containment, chimney, enclosed racks and rear door heat exchangers are different forms of segregation between the cold and the hot air streams.
- the containment industry seeks to more perfectly seal the contained space, to mitigate intensified local hot spots. It also a common practice to tune the cooling units' blowers down to increase the Power usage effectiveness (PUE) of the facility.
- PUE Power usage effectiveness
- the challenge for such systems is that an airflow mismatch between cooling units and information technology (IT) equipment is possible. This can be exemplified in, during normal operation: at change in the application of the IT equipment, increasing set point of cooling units, virtualization scenarios, and during economizer hours; maintenance modes: filter replacement, power grid maintenance; andfailures and outages.
- IT information technology
- DCIM Data Center Infrastructure Management
- IPMI Intelligent Platform Management Interface
- the flow curves testing methods can describe the exact aerodynamic behavior of IT equipment.
- the passive flow curve method describes the passive airflow behavior of the chassis while it is not operational, as shown in FIG. 1 . This gives information on the amount of airflow leakage in or out of the contained aisle through that specific IT equipment (inlet-outlet/outlet-inlet) based on the pressure differential input and static characteristics of the enclosure and its contents.
- the active flow curve method collapses the internal airflow resistance and the effect of its operational fans of the IT equipment into one analysis, as shown in FIG. 2 .
- the free delivery (FD) and critical pressure (P c ) are used to rank IT equipment air systems.
- the resulting curve can be corrected to account for any new fan speed values.
- the analysis may be performed for each separate item of IT equipment, or on an aisle level, using average measurements. When conducted at an item level, the particular components may be considered with respect to pressure drop and heat load.
- the AFC can be integrated into a controller to identify the percentage of the current flow to the FD flow of each item of IT equipment.
- the AFC curve can be related to the processor, RAM, HDD or SSD temperatures under different stress conditions, as shown in FIG. 3 .
- the data are collected and correlations are built between the airflow, pressure and components temperature at specified external inlet temperature. Note that it is safe to apply superposition for higher inlet temperatures.
- the controller modulates the cooling units and containment artificial (controllable) leakages.
- the controller can: increase cooling airflow; introduce artificial leakage paths; and/or power cap the IT equipment with lower computational importance.
- the PFC can be used to predict the thermal impact of inactive servers (due load balancing scheme or otherwise) on the cooling efficiency of the contained space.
- the present technology therefore provides a control system and method that predicts cooling performance of IT equipment based on, among other factors, pressure and fan speed data, and modulates the cooling system, containment structure and IT for reliable operation.
- the airflow may be predicted for every single item of IT equipment using the AFC method, or only for significant elements.
- the significant elements are those that introduce significant variations in the heat load, and/or air flow or pressure.
- Internal components temperatures may be reported directly, or using correlations from measured parameters.
- airflow regions 1,2 and 3 The percentage of airflow surplus or reduction (airflow regions 1,2 and 3) is reported to the controller, and the controller may then modulate the cooling airflow, the containment artificial leakage and utilization of the IT equipment. Each of these is an independent factor.
- the controller can operate to increase the cooling airflow, open leakage paths to maintain reliable operation, and avoid CPU throttling.
- CPU throttling represents an optimal solution, and therefore the controller may act to trigger throttling, such as by restricting cold airflow to a server, raising its temperature, and causing a throttling response.
- the heat load or power consumption in a portion of a facility may be deemed too high. While explicit control over processing load assignment is one option, this control may not be available for all elements within a rack, and leaving the system operational and cool may produce an undesired state or feedback to other control systems within the facility.
- the system can give early alarms to predict or avoid overheating, and of loss in computational abilities when compared to external discrete sensors which respond only after the effect of the failure is evidence.
- the controller may balance the pressure by introducing smart leakage paths to the containment.
- the controller can power cap the IT equipment with stronger air systems to mitigate the airflow reduction in weaker IT air systems, since the IT equipment typically has thermally responsive fans, and a high load on a system with a strong air system will further imbalance the system, while reducing power consumption will tend to reduce fan speed and airflow.
- the controller may determine the amount and direction of air leakage and indicate whether dampers are required to be operated.
- the controller can modulate smart louvers that are mounted at the IT facility outlet vents.
- the optimization may be an operating cost optimization.
- It is also an object to provide a system for controlling a data center having a cold air cooling system, and at least one cold air containment structure comprising: a sensor input, configured to receive sensor data representing thermal and pneumatic information from within the data center; at least one automated processor, configured to: determine a temperature-dependent performance constraint; determine, according to joint optimization criteria, joint optimum states of: the cold air cooling system, a controlled leakage device for controlling air flow across a boundary of the cold air containment structure, and information technology equipment for performing tasks to meet the performance constraint; and define control signals for the cold air cooling system, the controlled leakage device, and the information technology equipment, in accordance with the determined joint optimum states; and a control output, configured to provide control signals for the cold air cooling system, the controlled leakage device, and the information technology equipment.
- a data center controller comprising: a sensor input configured to receive at least thermal data from within a data center; at least one automated processor, configured to determine a set of jointly optimized states of a cold air cooling system for the data center, a controlled leakage device for controlling air flow across a boundary of a cold air containment structure within the data center, and information technology equipment within the data center for performing tasks; and define control signals for at least the controlled leakage device, in accordance with the determined joint optimum states; and a control output, configured to provide control signals for the controlled leakage device, dependent on the defined control signals.
- the method may further comprise receiving air pressure data from the at least one containment structure, thermal data, and fan speed data from the information technology equipment, and determining the optimum states selectively in dependence thereon.
- the information technology equipment may have an intrinsic thermal excursion throttling response that reduces processing performance under predetermined thermal conditions, further comprising modelling the throttling response of the information technology equipment.
- the determined optimum states may further provide a margin of statistical safety based on prior operating statistics of the data center.
- the determined optimum states may be dependent on a computational or numerical model of the data center.
- the determined optimum states may be dependent on a computational flow dynamics model of the cold air cooling system, information technology equipment, and the at least one containment structure.
- the determined optimum states may include, within a permissible range of operation, a predicted reverse flow of air through at least one element of information technology equipment from a hot aisle to a cold aisle.
- the determined optimum states may be dependent on an adaptively updated computational model of the data center.
- the determined optimum states may be dependent on an automatically defined computational model of the data center.
- the determined optimum states may be dependent on a hybrid of an automatically defined computational model of the data center and a physics model of the data center.
- the determined optimum states may be dependent on a predicted air flow through each piece of information technology equipment of the data center.
- the determining optimum states may be responsive to time lags within each of the cold air cooling system, a controlled leakage device, and the information technology equipment.
- the information technology equipment may be distributed across a plurality of racks, further comprising optimizing a rack location within the data center of the information technology equipment where respective processing tasks are performed.
- the method may further comprise predicting an air flow through each piece of information technology equipment of the data center.
- the method may further comprise predicting a null air flow through each piece of information technology equipment of the data center due to back pressure against a fan.
- the method may further comprise controlling the at least one containment structure to selectively vent in response to a control signal.
- the method may further comprise controlling a damper associated with the at least one containment structure to selectively restrict an air flow in response to a control signal.
- the method may further comprise issuing a warning of a reduced computing performance or impending reduced computing performance of the information technology equipment due to a thermal event.
- the method may further comprise issuing a warning of a failure to meet the performance constraint.
- the method may further comprise issuing a warning of an overheating of a piece of information technology equipment.
- the method may further comprise detecting an airflow reduction in the cold air cooling system, and imposing a power cap on certain information technology equipment with relatively higher capacity cooling fans to mitigate a reduction in available cold air to other information technology equipment with relatively lower capacity cooling fans.
- FIG. 1 shows an exemplary graph of flow vs. pressure for IT equipment.
- FIG. 2 shows a generic active flow curve (AFC) graph, indicating three regions in the airflow vs. pressure curve; Region 1 (over-provisioning); Region 2 (under-provisioning), and Region 3 (Reverse/Back Flow).
- AFC active flow curve
- FIG. 3 shows an air pressure vs. CPU temperature curve for a 2U new generation server, at 50% and 100% CPU utilization.
- a legacy data center consists of an array of hot and cold aisles where the air intake to the IT equipment resides in the cold aisle and the air exhaust of the equipment rejects hot air into the hot aisle.
- chilled air is supplied through the plenum to the cold aisle. The heated air in the hot aisle flow backs to the cooling unit return.
- CAC or HAC cold or hot aisle containment
- This segregation of the hot and cold air streams is referred to as “containment”. It is considered to be a key cooling solution in today's mission critical data centers. It promotes: (1) greater energy efficiency: by allowing cooling at higher set points, increasing the annual economizer hours and reducing chiller costs; (2) better use of the cold air and hence greater capacity: containment generates a higher temperature difference across the cooling unit making the most of the cooling coils capacity; and (3) lower likelihood of recirculation and therefore better resiliency (defined as the ability of a data center, to continue operating and recover quickly when experiencing a loss of cooling).
- hot or cold aisle air containment creates a new relationship between the air systems within respective IT equipment, and the airflow supply source at the facility level.
- each piece of IT equipment is able to get its necessary airflow (i.e., free delivery airflow), independent of airflow through the other neighboring IT equipment, and also independent of airflow through the perforated tiles through the full range of air system fan speeds (i.e., varying RPM).
- the CAC solution is constructed such that the cold aisle is boxed to segregate the cold aisle from the rest of the data center. Airflow leakage paths through the CAC are minimized by the design. The result is that airflow for the IT equipment is delivered through the raised floor perforated tiles within the CAC. This causes a new airflow relationship between all the IT equipment enclosed by the CAC. There is no longer an unlimited supply of low impedance airflow from the open air room for all the IT equipment within the CAC. Instead, there is effectively a single source of constrained airflow through the perforated tiles.
- FIG. 2 shows the active flow curve (AFC) for a generic piece of IT equipment, where the pressure is measured at both the inlet and outlet [Alissa, H., A.; Nemati, K.; Sammakia, B. G.; Schneebeli, K.; Schmidt, R. R.; Seymour, M. J., “Chip to Facility Ramifications of Containment Solution on IT Airflow and Uptime,” in Components, Packaging and Manufacturing Technology, IEEE Transactions on, vol. PP, no. 99, pp. 1-12, 2016.].
- the inlet or P1 is in the contained cold aisle.
- the outlet P2 is measured at the open hot aisle side.
- the chassis is designed to pull cold air from the cold to the hot aisles (i.e. Regular Flow). From an aerodynamic point of view, the flow curve includes three regions of airflow that an operating server can experience.
- Region 1 represents aided airflow.
- An example can be an over-provisioned CAC where P2 ⁇ P1. This will induce airflow rates that are higher than the free delivery or designed airflow through the IT equipment. Any operating point in this region has a negative backpressure differential based on the definition of ⁇ P, and a flow rate that is always higher than point FD.
- This is analogous to an open aisle configuration, where the cold and hot aisle pressures are equal, or even a CAC scenario with neutral provisioning and an ideally uniform pressure distribution. Note that the FD point is implicitly assumed by IT vendors when addressing thermal specifications.
- the designed airflow may not be the actual operating condition in a containment environment. Therefore, both the inlet temperature and flow rate should be specified for the IT equipment, especially when installed with a containment solution. This becomes of great importance when the supply temperature is increased for efficiency, inducing variations in the server's fan speeds, which are typically thermally responsive.
- the AFC testing process [Alissa, H., A.; Nemati, K.; Sammakia, B. G.; Schneebeli, K.; Schmidt, R. R.; Seymour, M. J., “Chip to Facility Ramifications of Containment Solution on IT Airflow and Uptime,” in Components, Packaging and Manufacturing Technology, IEEE Transactions on, vol. PP, no. 99, pp. 1-12, 2016.] is based on attaching operating servers at controlled fan speed to the flow bench and creating different imbalances that covers the three regions of airflow. The procedure was applied to five different IT chassis, that cover the airflow spectrum in the data center. Note that the fans are operated at maximum RPM, but curves at lower RPM can be derived from affinity laws.
- Table 1 displays the main characteristic of each air system [Alissa, H., A.; Nemati, K.; Sammakia, B. G.; Schneebeli, K.; Schmidt, R. R.; Seymour, M. J., “Chip to Facility Ramifications of Containment Solution on IT Airflow and Uptime,” in Components, Packaging and Manufacturing Technology, IEEE Transactions on, vol. PP, no. 99, pp. 1-12, 2016].
- a 1U TOR (top of rack) switch represents the low end of the airflow spectrum (i.e., a weak air system).
- the critical pressure is at 25 Pa (0.10 in. H 2 O) and the free delivery is 0.014 m 3 /s (31.17 CFM).
- a 9U BladeCenter has a free delivery airflow of 0.466 m 3 /s (987.42 CFM) and the critical pressure is 1048 Pa (4.21 in. H 2 O).
- BladeCenter has the strongest air system when compared with all other IT equipment characterized.
- Table 1 shows that during an airflow shortage event, the different pieces of IT equipment react differently, based on the relative strength of their air moving system. This indicates that some will fail or overheat before others do.
- a 2U compute server was connected through a Linux interface where the CPU utilization and the fans' RPM were controlled while mounted on the flow bench.
- the AFC (Active Flow Curve) experimental procedure was implemented at maximum fan speed and 100% CPU utilization. As the backpressure was varied, steady state temperature readings were taken for the CPU, as shown in FIG. 3 .
- the testing started at region 1 where the server was over-provisioned with airflow higher than its design airflow rate.
- the test starts while the chassis is operating at its free delivery airflow with zero external impedance. Then a back pressure perturbation is introduced for ⁇ 70 minutes after that the system is relived. During this period the HDDs (Hard Disk Drives) heat up.
- the FCS fan control system
- the storage unit has three rows of HDDs; front, middle, and rear. The rear HDDs can get thermally shadowed by the heat generated by the upstream components.
- the cooling control scheme of a typical modern data center can be based on Infrastructural temperature monitoring points at the IT equipment inlets or, alternatively, at locations specified for the IT analytics Intelligent Platform Management Interface (IPMI) data. These locations include ones within the equipment but near the air inlet.
- IPMI Intelligent Platform Management Interface
- the IPMI inlet sensor reads a couple of degrees higher than the Infrastructural sensors due to preheating from components inside the chassis.
- the inconsistency rapidly grows between both measuring systems during airflow imbalances such as those experienced in containment.
- a system and algorithms are provided for a data center-level control that optimize the operations to minimize energy consumption at any given performance level.
- the control system predicts cooling performance of IT based on data measured in the data center.
- the data may advantageously be pressure and fan speed data in the case of air cooling. This data is typically available, and if not, retrofits are possible to obtain it.
- the data may also be pressure and liquid flow rate in the case of liquid cooled systems.
- the data may include both air and liquid cooling flow rates in the case of hybrid data centers.
- the control system works by modulating the cooling system, containment structure, and IT equipment for reliable operation and adequate IT processing performance. That is, an optimization is employed according to an objective function which seeks to achieve the desired level of performance (quality of service, performance metrics). Cost may be a criterion, since the problems typically arise as a result of cost-effective compromise in the design and/or operation of the data center. Therefore, the optimization typically seeks to achieve the desired or require performance at the lowest cost, while maintaining a safe margin of operation and fault tolerance. Thus, within the performance bounds, and weighing reliability as a cost as well, the cooling system and containment may be actively controlled to have the lowest feasible operating costs.
- the control system may gather many data feeds, including for example: fans' average RPM (revolution per minute), temperatures, and (IT equipment level or aisle level) pressure differential, cooling system temperatures and air pressure, which provide inputs to the controller.
- the control system can adaptively generate predictive models of the dynamic operating states of the IT equipment, that may be run in real time based on combinations of empirical data and physics based models.
- the predictive models may be verified by the controls, in terms of errors or deviations between the predicted performance and the observed performance.
- the errors may be used in some cases to improve the models, and in other cases, to indicate issues that require human analysis. For example, if a physical model is incorrect or incomplete, it may generate errors under certain conditions. When these conditions are understood, the model may be explicitly modified. If the errors are not understood, then the model itself can be made more complex, or operation with the model extended to a statistically safe margin given the errors observed.
- the airflow may be predicted for every single piece of IT equipment, using the AFC method, or only for selected pieces. If the modelling is incomplete, there will be larger error in its use, since the unmodelled elements appear as correlated or uncorrelated noise, or complex and perhaps incorrect parameters of the modelled elements. However, using adaptive modelling techniques, it may be possible over time and experience, to implicitly model those elements that are not explicitly modelled.
- the controller may modulate the cooling airflow, the containment artificial leakage and utilization of the IT equipment. That is, based on the datacenter thermal properties, selecting certain IT equipment, especially entire racks, to undertake load or to assume an idle, standby, or off state may be appropriate.
- the cooling system When in a standby or off state, the cooling system may be controlled to reduce or eliminate unnecessary cooling to that IT equipment.
- fans may slow or shut down, leading to changes in pressure distribution within the datacenter. These changes are preferably explicitly modelled.
- the controller can modulate the cooling airflow to increase volume, open leakage paths to maintain reliable operation, and avoid CPU throttling.
- the system can give early alarms warning of imminent overheating and of loss in computational abilities. These warnings may be issued before any actual change in the state of the IT equipment, based on predicted changes, some of which may be controlled by the controller. For example, in case of cooling equipment failure, the overheating or throttling of some equipment may be inevitable. The controller may therefore make an economic optimization of which equipment to preserve in the fully operational state, and which equipment to permit to heat and begin to throttle. Likewise, the response of the datacenter may have different time-constants and lags, which are considered in the model and prediction. For example, the controller may make a decision to switch some racks to Region 3 operation. In Region 3, the IT equipment will be running hotter, and may inevitably throttle. However, as a result of throttling, the power dissipation is reduced, and therefore the datacenter may enter various oscillations and compensation overshoots.
- the controller may balance the pressure by introducing smart leakage paths to the containment. In case of disproportionate airflow reduction (when strong and weak IT equipment air systems are mixed), the controller can power cap IT equipment with stronger air systems to mitigate the airflow reduction in weaker IT air systems.
- the controller may determine the amount and direction of leakage (since the fans are not running) and indicate whether dampers are required to be operated to compensate.
- the controller can also modulate smart louvers that are mounted at the IT outlet vents or elsewhere within the datacenter air cooling system.
- Some of the embodiments disclosed herein may be implemented in software, hardware, application logic, or a combination of software, hardware, and application logic.
- the software, application logic, and/or hardware may reside in memory, the control apparatus, or electronic components disclosed herein, for example.
- the application logic, software or an instruction set is maintained on any one of various conventional computer-readable media.
- a “computer-readable medium” may be any non-transitory media that can contain, store, communicate, propagate or transport the instructions for use by or in connection with an instruction execution system, apparatus, or device, such as a computer or data processor circuitry.
- a computer-readable medium may comprise a non-transitory computer-readable storage medium that may be any media that can contain or store the instructions for use by or in connection with an instruction execution system, apparatus, or device, such as a computer.
- some of the embodiments disclosed herein include computer programs configured to cause methods as disclosed with respect to the nodes disclosed herein.
- the subject matter described herein may be embodied in systems, apparatus, methods, and/or articles depending on the desired configuration.
- the systems, apparatus, methods, and/or articles described herein can be implemented using one or more of the following: electronic components such as transistors, inductors, capacitors, resistors, and the like, a processor executing program code, an application-specific integrated circuit (ASIC), a digital signal processor (DSP), an embedded processor, a field programmable gate array (FPGA), and/or combinations thereof.
- electronic components such as transistors, inductors, capacitors, resistors, and the like, a processor executing program code, an application-specific integrated circuit (ASIC), a digital signal processor (DSP), an embedded processor, a field programmable gate array (FPGA), and/or combinations thereof.
- ASIC application-specific integrated circuit
- DSP digital signal processor
- FPGA field programmable gate array
- These various example embodiments may include implementations in one or more computer programs that are executable and/or interpretable on a programmable system including at least one programmable processor, which may be special or general purpose, coupled to receive data and instructions from, and to transmit data and instructions to, a storage system, at least one input device, and at least one output device.
- These computer programs also known as programs, software, software applications, applications, components, program code, or code
- machine-readable medium refers to any computer program product, computer-readable medium, computer-readable storage medium, apparatus and/or device (for example, magnetic discs, optical disks, memory, Programmable Logic Devices (PLDs)) used to provide machine instructions and/or data to a programmable processor, including a machine-readable medium that receives machine instructions.
- PLDs Programmable Logic Devices
- systems are also described herein that may include a processor and a memory coupled to the processor.
- the memory may include one or more programs that cause the processor to perform one or more of the operations described herein.
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Abstract
Description
TABLE 1 |
IT AIR SYSTEMS CHARACTERISTICS |
IT | FD [m3/s, CFM] | Pc [Pa, in. H2O] | ||
1U Switch | [0.014, 31.17] | [25, 0.10] | ||
1U Server | [0.034, 72.74] | [326, 1.31] | ||
2U Server | [0.046, 98.97] | [176, 0.71] | ||
2U Server NG | [0.066, 140.21] | [271, 1.09] | ||
9U Blade Server | [0.466, 987.42] | [1048, 4.21] | ||
- AFC Active Flow Curve
- CAC Cold Aisle Containment
- CPU Central Processing Unit
- CRAC Computer Room Air Conditioner—Direct Expansion—.
- CRAH Computer Room Air Handler—Chiller—
- FD Delivery (Design) airflow, [m3/s or CFM]
- HAC Hot Aisle Containment
- HDD Hard Disk Drive
- IO Input/output
- IT Information Technology
- IT Servers, switches, Blades . . .
- IPMI Inelegant Platform Management Interface
- NG New Generation server
- PC Critical Backpressure, [Pa or in. H2O]
- SMART Data from a hard drive or solid state drive's self-monitoring capability
- TOR Top of Rack
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US18/661,595 US20240334659A1 (en) | 2017-01-24 | 2024-05-11 | Control systems and prediction methods for it cooling performance in containment |
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US20210360833A1 (en) | 2021-11-18 |
US11985802B2 (en) | 2024-05-14 |
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